EP3835085B1 - Pneu non pneumatique - Google Patents

Pneu non pneumatique Download PDF

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Publication number
EP3835085B1
EP3835085B1 EP20213090.2A EP20213090A EP3835085B1 EP 3835085 B1 EP3835085 B1 EP 3835085B1 EP 20213090 A EP20213090 A EP 20213090A EP 3835085 B1 EP3835085 B1 EP 3835085B1
Authority
EP
European Patent Office
Prior art keywords
groove
tire
protrusion
annular portion
main groove
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
EP20213090.2A
Other languages
German (de)
English (en)
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EP3835085A1 (fr
Inventor
Hiroshi Tahara
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Toyo Tire Corp
Original Assignee
Toyo Tire Corp
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
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Publication of EP3835085A1 publication Critical patent/EP3835085A1/fr
Application granted granted Critical
Publication of EP3835085B1 publication Critical patent/EP3835085B1/fr
Active legal-status Critical Current
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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C11/00Tyre tread bands; Tread patterns; Anti-skid inserts
    • B60C11/03Tread patterns
    • B60C11/0306Patterns comprising block rows or discontinuous ribs
    • B60C11/0309Patterns comprising block rows or discontinuous ribs further characterised by the groove cross-section
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C11/00Tyre tread bands; Tread patterns; Anti-skid inserts
    • B60C11/03Tread patterns
    • B60C11/04Tread patterns in which the raised area of the pattern consists only of continuous circumferential ribs, e.g. zig-zag
    • B60C11/042Tread patterns in which the raised area of the pattern consists only of continuous circumferential ribs, e.g. zig-zag further characterised by the groove cross-section
    • B60C11/047Tread patterns in which the raised area of the pattern consists only of continuous circumferential ribs, e.g. zig-zag further characterised by the groove cross-section the groove bottom comprising stone trapping protection elements, e.g. ribs
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C7/00Non-inflatable or solid tyres
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C11/00Tyre tread bands; Tread patterns; Anti-skid inserts
    • B60C11/03Tread patterns
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C7/00Non-inflatable or solid tyres
    • B60C7/10Non-inflatable or solid tyres characterised by means for increasing resiliency
    • B60C7/14Non-inflatable or solid tyres characterised by means for increasing resiliency using springs
    • B60C7/16Non-inflatable or solid tyres characterised by means for increasing resiliency using springs of helical or flat coil form
    • B60C7/18Non-inflatable or solid tyres characterised by means for increasing resiliency using springs of helical or flat coil form disposed radially relative to wheel axis
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C7/00Non-inflatable or solid tyres
    • B60C7/10Non-inflatable or solid tyres characterised by means for increasing resiliency
    • B60C7/14Non-inflatable or solid tyres characterised by means for increasing resiliency using springs
    • B60C7/16Non-inflatable or solid tyres characterised by means for increasing resiliency using springs of helical or flat coil form
    • B60C7/20Non-inflatable or solid tyres characterised by means for increasing resiliency using springs of helical or flat coil form disposed circumferentially relative to wheel axis
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C11/00Tyre tread bands; Tread patterns; Anti-skid inserts
    • B60C11/03Tread patterns
    • B60C2011/0337Tread patterns characterised by particular design features of the pattern
    • B60C2011/0339Grooves
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C11/00Tyre tread bands; Tread patterns; Anti-skid inserts
    • B60C11/03Tread patterns
    • B60C2011/0337Tread patterns characterised by particular design features of the pattern
    • B60C2011/0339Grooves
    • B60C2011/0341Circumferential grooves
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C11/00Tyre tread bands; Tread patterns; Anti-skid inserts
    • B60C11/03Tread patterns
    • B60C11/13Tread patterns characterised by the groove cross-section, e.g. for buttressing or preventing stone-trapping
    • B60C11/1307Tread patterns characterised by the groove cross-section, e.g. for buttressing or preventing stone-trapping with special features of the groove walls
    • B60C2011/1338Tread patterns characterised by the groove cross-section, e.g. for buttressing or preventing stone-trapping with special features of the groove walls comprising protrusions

Definitions

  • the present invention relates to a non-pneumatic tire.
  • a plurality of grooves is formed on a tread of a tire.
  • so-called stone holding in which stones are caught in the grooves during running sometimes occurs.
  • the stone holding can cause cracks on bottoms of the grooves and sidewalls of the grooves, and can cause vibration and noise.
  • there are measures such as providing protrusions on the bottoms of the grooves as in the following Patent Document 1.
  • US 2019/0184748 A1 relates to a non-pneumatic tire provided with, as a tire structural member, a support structure for supporting a load from a vehicle and further relates to a non-pneumatic tire usable as a substitute for a pneumatic tire.
  • Patent Document 1 JP 2016-199 073 A
  • the non-pneumatic tire T includes a support structure SS for supporting a load from a vehicle.
  • the non-pneumatic tire T of the present invention just needs to include such a support structure SS as described above.
  • a member corresponding to a tread, a reinforcing layer, members for accommodation to an axle and a rim, or the like may be provided on an outer side (outer circumference side) and an inner side (inner circumference side) of the support structure SS.
  • a tread 4 is provided outside the support structure SS.
  • the tread 4 is made of, for example, rubber as in a conventional pneumatic tire, and includes a pattern (grooves) on an outer circumferential surface thereof as in a conventional pneumatic tire.
  • the support structure SS and the tread 4 are adhered to each other by an adhesive.
  • the support structure SS includes: an inner annular portion 1; an outer annular portion 2 provided concentrically on an outer side of the inner annular portion 1; and a plurality of coupling portions 3 which couple the inner annular portion 1 and the outer annular portion 2 to each other.
  • the support structure SS in the present invention is formed of an elastic material. From a viewpoint of enabling integral molding at the time of manufacturing the support structure SS, it is preferable that the inner annular portion 1, the outer annular portion 2, and the coupling portion 3 be basically made of the same material except a reinforcing structure.
  • a base material of the support structure SS there may be adopted a thermoplastic elastomer such as polyester elastomer, a cross-linked rubber such as natural rubber, or other resins (for example, a thermoplastic resin such as polyethylene resin, and a thermosetting resin such as polyurethane resin).
  • a reinforcing material such as fibers or a metal cord may be embedded inside the base material.
  • the inner annular portion 1 have a cylindrical shape with a constant thickness. Moreover, on an inner circumferential surface of the inner annular portion 1, it is preferable to provide irregularities and the like for maintaining fitting property in order to mount the non-pneumatic tire T to the axle and the rim. Note that, though the thickness of the inner annular portion 1 is not particularly limited, the thickness is appropriately set from viewpoints of reducing a weight and improving a durability while sufficiently transmitting force to the coupling portion 3.
  • an inner diameter of the inner annular portion 1 is not particularly limited, the inner diameter is appropriately determined according to dimensions of the rim and the axle on which the non-pneumatic tire T is to be mounted, and the like.
  • a width of the inner annular portion 1 in a tire width direction WD is not particularly limited, the width is appropriately determined depending on a purpose, a length of the axle, and the like.
  • the outer annular portion 2 have a cylindrical shape with a constant thickness. Note that, though the thickness of the outer annular portion 2 is not particularly limited, the thickness is appropriately set from the viewpoints of reducing the weight and improving the durability while sufficiently transmitting force from the coupling portion 3.
  • an inner diameter of the outer annular portion 2 is not particularly limited, the inner diameter is appropriately determined depending on the purpose and the like.
  • a width of the outer annular portion 2 in the tire width direction WD is not particularly limited, the width is appropriately determined depending on the purpose and the like. Note that, preferably, the width of the outer annular portion 2 is the same as the width of the inner annular portion 1.
  • the coupling portions 3 couple the inner annular portion 1 and the outer annular portion 2 to each other.
  • a plurality of the coupling portions 3 are provided so as to be independent of one another in the tire circumferential direction CD by placing appropriate intervals between the coupling portions 3.
  • the number of coupling portions 3 is not particularly limited, the number is appropriately set from viewpoints of reducing the weight, improving power transmission, and improving the durability while sufficiently supporting the load from the vehicle.
  • the plurality of coupling portions 3 are configured such that first coupling portions 31 and second coupling portions 32 are arrayed along the tire circumferential direction CD. In this case, it is preferable that the first coupling portions 31 and the second coupling portions 32 be arrayed alternately with each other along the tire circumferential direction CD. This makes it possible to further reduce dispersion of the ground contact pressure during tire rolling.
  • a pitch in the tire circumferential direction CD between the first coupling portions 31 and the second coupling portions 32 be set constant.
  • Each of the first coupling portions 31 is extended from one side WD1 in the tire width direction of the inner annular portion 1 toward other side WD2 in the tire width direction of the outer annular portion 2.
  • each of the second coupling portions 32 is extended from the other side WD2 in the tire width direction of the inner annular portion 1 toward the one side WD 1 in the tire width direction of the outer annular portion 2. That is, the first coupling portion 31 and the second coupling portion 32, which are adjacent to each other, are disposed in a substantially X shape when viewed from the tire circumferential direction CD.
  • the first coupling portion 31 and the second coupling portion 32 when viewed from the tire circumferential direction CD are preferably symmetric to each other with respect to a tire equatorial plane as shown in FIG. 2 . Therefore, hereinafter, the first coupling portion 31 will mainly be described.
  • the first coupling portion 31 has an elongated plate-like shape extending from the inner annular portion 1 to the outer annular portion 2.
  • a plate thickness t is smaller than a plate width w, and a plate thickness direction is oriented to the tire circumferential direction CD. That is, the first coupling portion 31 has a plate shape extending in the tire radial direction RD and in the tire width direction WD.
  • the first coupling portion 31 and the second coupling portion 32 are formed into such an elongated plate shape.
  • the first coupling portion 31 and the second coupling portion 32 can obtain desired rigidity by setting the plate width w to be wide. Therefore, the durability can be improved. Moreover, the number of first coupling portions 31 and the number of second coupling portions 32 are increased while thinning the plate thickness t. In this way, gaps between the coupling portions adjacent to one another in the tire circumferential direction CD can be reduced while maintaining the rigidity of the entire tire. Therefore, the dispersion of the ground contact pressure during the tire rolling can be reduced.
  • the thickness t is not particularly limited, the thickness t is appropriately set from the viewpoints of reducing the weight and improving the durability while sufficiently transmitting force from the inner annular portions 1 and the outer annular portions 2.
  • the plate width W is not particularly limited, the plate width w is appropriately set from the viewpoints of reducing the weight and improving the durability while sufficiently transmitting force from the inner annular portions 1 and the outer annular portions 2.
  • the first coupling portion 31 includes an inner connecting portion 31a connected to the inner annular portion 1 and an outer connecting portion 3 1b connected to the outer annular portion 2.
  • the inner connecting portion 31a is formed into a rectangular shape in the present embodiment.
  • a longitudinal direction of the inner connecting portion 31a is parallel to the tire width direction WD. Note that the longitudinal direction of the inner connecting portion 31a does not have to be parallel to the tire width direction WD, and for example, may intersect the tire width direction WD.
  • the outer connecting portion 31b is formed into a rectangular shape in the present embodiment.
  • a longitudinal direction of the outer connecting portion 31b is parallel to the tire width direction WD. Note that the longitudinal direction of the outer connecting portion 3 1b does not have to be parallel to the tire width direction WD, and for example, may intersect the tire width direction WD.
  • a tread surface 4a of the tread 4 of the present embodiment is parallel to the tire width direction WD and is flat from one end to the other end in the tire width direction WD.
  • the tread surface 4a of the tread 4 does not necessarily have to be flat and may have a curvature.
  • the curvature of the tread surface 4a is preferably small, and for example, a radius of curvature of the tread surface 4a is preferably 490 mm or more, more preferably 810 mm or more.
  • the radius of curvature here is a radius of curvature when the tread surface 4a has one curvature, or is a radius of curvature of a curvature closest to the tire equatorial plane when the tread surface 4a has a plurality of curvatures along the tire width direction WD.
  • a difference between a maximum outer diameter and minimum outer diameter of the tread surface 4a is preferably 10 mm or less, more preferably 6 mm or less.
  • the maximum outer diameter of the tread surface 4a is an outer diameter of the tread surface 4a on the tire equatorial plane
  • the minimum outer diameter of the tread surface 4a is an outer diameter of the tread surface 4a on both ends in the tire width direction WD.
  • FIG. 4 is a view of the tread 4 when viewed from an outer circumference thereof. Portions shown by broken lines in FIG. 4 are outer connecting portions 31b and 32b.
  • the tread 4 includes annular connecting portion regions 40 and 40 located outward of the outer connecting portions 31b and 32b in the tire radial direction. The connecting portion regions 40 and 40 overlap the outer connecting portions 31b and 32b in the tire radial direction RD when viewed from the tire circumferential direction CD.
  • a plurality of grooves is formed on the outer circumferential surface of the tread 4.
  • three main grooves 5 extending in the tire circumferential direction CD are formed.
  • the main groove 5 is formed on a center of the tread 4 in the tire width direction WD and on the connecting portion regions 40 and 40.
  • the main grooves 5 may be aligned with the tire circumferential direction CD, may be inclined with respect thereto, or may be zigzag as long as extending in the tire circumferential direction CD.
  • Lateral grooves extending in the tire width direction WD may be formed on the outer circumferential surface of the tread 4.
  • the lateral grooves may be aligned with the tire width direction WD or may be inclined with respect thereto as long as extending in the tire width direction WD.
  • Cross sections of the main grooves 5 have a rectangular shape.
  • the cross sections of the main grooves 5 are not limited to such a rectangular shape, and may have a trapezoidal shape in which groove bottoms are narrower than groove openings.
  • Each of the main grooves 5 includes groove sidewalls 5a and 5a extending along the tire radial direction RD, and a groove bottom 5b coupling inner ends of both of the groove sidewalls 5a in the tire radial direction to each other.
  • the groove sidewalls 5a and 5a are flat surfaces passing through an end of the groove opening and an end of the groove bottom 5b.
  • the main groove 5 includes protrusions 50 protruding inward of the groove from the groove sidewalls 5a.
  • the main groove 5 includes the protrusions 50 individually protruding from both of the groove sidewalls 5a. In the present embodiment, among the three main grooves 5, only the main grooves 5 located on the connecting portion regions 40 and 40 include the protrusions 50.
  • the main grooves 5 include the protrusions 50, whereby stones can be suppressed from entering the main groove from the groove openings, and the stone holding can be suppressed. Moreover, the main grooves 5 include the protrusions 50, whereby, even if stones enter the same, a direct contact between the groove sidewalls 5a and the stones can be prevented, and a crack in the groove sidewalls 5a can be prevented.
  • the protrusions 50 also have a function to discharge a stone that has entered each of the main grooves 5.
  • the tread surface 4a of the tread 4 has a curvature like a general pneumatic tire, stones are caught in the main groove 5 due to narrowing of a groove width of the main groove 5 when the tire touches the ground, but as the tire rolls, a groove width of the main groove 5 returns to an original value thereof, and the stones are discharged by centrifugal force.
  • the groove width of the main groove 5 is almost the same no matter whether or not the tire touches the ground, and accordingly, force to discharge the held stones is weak, but the discharge of the stones can be urged by the protrusions 50.
  • the protrusions 50 are moved inward (toward the groove bottom) in the tire radial direction and enter an inside of a stone 9 in the tire radial direction. Thereafter, when a compression load on the lands 41 is released as the tire rolls, the protrusions 50 are moved outward (toward the opening) in the tire radial direction as shown in FIG. 5(b) , and exert the function to discharge the stone 9.
  • each of the protrusions 50 is triangular, and the protrusion 50 includes a protrusion outer surface 50a facing outward in the tire radial direction and a protrusion inner surface 50b facing inward in the tire radial direction.
  • the protrusion outer surface 50a is substantially parallel to the tire width direction WD.
  • the protrusion inner surface 50b is inclined so as to approach the groove sidewall 5a toward the groove bottom 5b with respect to the tire radial direction RD corresponding to a depth direction of the main groove 5. That is, the protrusion 50 is provided so that the groove width becomes wider toward the groove bottom 5b by the protrusion inner surface 50b.
  • the protrusion 50 protrudes toward the opening of the main groove 5.
  • a protrusion direction of the protrusion 50 (indicated by an arrow in FIG. 3 ) is inclined with respect to the tire width direction WD so as to approach the groove opening toward a tip 50c of the protrusion 50.
  • the protrusion direction of the protrusion 50 is a direction from a center of a proximal end 50d toward a center of the tip 50c.
  • the protrusion 50 protrudes toward the opening of the main groove 5, whereby the protrusion 50 becomes a "guard" and can effectively suppress the entrance of a stone, while a stone that has entered the main groove 5 is easily discharged.
  • the main groove 5 may include a plurality of the protrusions 50 along the depth direction of the main groove 5.
  • cross sections of the plurality of protrusions 50 have a sawtooth shape.
  • the plurality of protrusions 50 may have the same shape or may have different shapes from one another. For example, the protrusion 50 closer to the opening of the main groove 5 may be smaller than the protrusion 50 closer to the groove bottom.
  • the entrance of a stone can be effectively suppressed if the protrusion 50 is located closer to the opening than the center of the groove sidewall 5a in the depth direction, and meanwhile, a stone can be effectively discharged if the protrusion 50 is located closer to the groove bottom than the center of the groove sidewall 5a in the depth direction.
  • the protrusions 50 may be continuously provided along the direction in which the main groove 5 extends. In the present embodiment, the protrusions 50 are continuously provided along the tire circumferential direction CD. However, the protrusions 50 do not have to be continuously provided along the tire circumferential direction CD, and may be provided intermittently. For example, one protrusion 50 may be provided for each repeating pitch of a tread pattern.
  • a length (protrusion amount) p from the groove sidewall 5a to the tip 50c is preferably 20 % or more, more preferably 30 % or more of the groove width gw. Further, the protrusion amount p is preferably 45 % or less, more preferably 40 % or less of the groove width gw.
  • the non-pneumatic tire T includes: the inner annular portion 1; the outer annular portion 2 provided concentrically on the outer side of the inner annular portion 1; the plurality of coupling portions 3 coupling the inner annular portion 1 and the outer annular portion 2 to each other; the tread 4 provided on the outer side of the outer annular portion 2; and the main groove 5 formed on the tread 4, wherein the main groove 5 includes the protrusions 50 protruding inward of the groove from the groove sidewall 5a.
  • the main grooves 5 include the protrusions 50, whereby a stone can be suppressed from entering the main groove from each of the groove openings, and the stone holding can be suppressed.
  • the protrusions 50 may be configured to protrude toward the opening of each of the main grooves 5. With this configuration, the protrusion 50 becomes a "guard” and can effectively suppress the entrance of a stone, while a stone that has entered the main groove 5 is easily discharged.
  • the main groove 5 may include a plurality of the protrusions 50 along the groove depth direction. With this configuration, a stone can be effectively suppressed from entering the main groove from the groove opening.
  • the main groove 5 may include protrusions 50 protruding from both of the groove sidewalls 5a. With this configuration, a stone can be effectively be prevented from entering the main groove from the groove opening.
  • the main grooves 5 including the protrusions 50 may be formed in the connecting portion regions 40 located on the outer side in the tire radial direction of the outer connecting portions 31b and 32b of the coupling portions 3 and the outer annular portion 2.
  • the main grooves 5 formed on the connecting portion regions 40 include the protrusion 50, whereby it is possible to focus on measures against the stone holding in the connecting portion regions 40.
  • the protrusions 50 may be continuously provided along the extending direction of the main grooves 5. With this configuration, the stone holding can be effectively suppressed in the entire tire.
  • the non-pneumatic tire is not limited to the configuration of the above-described embodiments, and is not limited to the above-described functions and effects.

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Tires In General (AREA)

Claims (8)

  1. Bandage non pneumatique (T) comprenant :
    - une portion annulaire intérieure (1) ;
    - une portion annulaire extérieure (2) prévue de manière concentrique sur un côté extérieur de la portion annulaire intérieure (1) ;
    - une pluralité de portions de couplage (3, 31, 32) qui couplent la portion annulaire intérieure (1) et la portion annulaire extérieure (2) l'une à l'autre ;
    - une bande de roulement (4) prévue sur un côté extérieur de la portion annulaire extérieure (2) ;
    dans lequel la pluralité de portions de couplage (3) comprennent une pluralité de premières portions de couplage (31) et une pluralité de secondes portions de couplage (32), qui sont agencées en alternance l'une par rapport à l'autre le long de la direction circonférentielle du pneumatique (CD), dans lequel chacune des premières portions de couplage (31) s'étend depuis un côté (WD1) dans la direction de la largeur du pneumatique de la portion annulaire intérieure (1) vers un autre côté (WD2) dans la direction de la largeur du pneumatique de la portion annulaire extérieure (2) et chacune des secondes portions de couplage (32) s'étend depuis l'autre côté (WD2) dans la direction de la largeur du pneumatique de la portion annulaire intérieure (1) vers ledit un côté (WD1) dans la direction de la largeur du pneumatique de la portion annulaire extérieure (2), de telle sorte que la première portion de couplage (31) et la seconde portion de couplage (32), qui sont adjacentes l'une à l'autre, sont disposées dans une forme sensiblement en X dans une vue depuis la direction circonférentielle du pneumatique (CD),
    dans lequel chacune la pluralité de premières portions de couplage (31) inclut une portion de connexion intérieure (31a) connectée à la portion annulaire intérieure (1) et une portion de connexion extérieure (31b) connectée à la portion annulaire extérieure (2) et chacune de la pluralité de secondes portions de couplage (32) inclut une portion de connexion intérieure (32a) connectée à la portion annulaire intérieure (1) et une portion de connexion extérieure (32b) connectée à la portion annulaire extérieure (2), dans lequel la bande de roulement (4) inclut une première région de portion de connexion annulaire (40), qui recouvre partiellement les portions de connexion extérieures (31b) des premières portions de couplage (31) dans la direction radiale du pneumatique RD dans une vue depuis la direction circonférentielle du pneumatique (CD), et une seconde région de portion de connexion (40), qui recouvre partiellement les portions de connexion extérieures (32b) des secondes portions de couplage (32) dans la direction radiale du pneumatique RD dans une vue depuis la direction circonférentielle du pneumatique (CD), et
    dans lequel la bande de roulement (4) inclut en outre une portion centrale agencée entre la première région de portion de connexion annulaire (40) et la seconde région de portion de connexion annulaire (40) de la bande de roulement (4),
    caractérisé en ce que
    trois rainures principales (5) s'étendant dans la direction circonférentielle du pneumatique (CD) sont formées dans la bande de roulement (4),
    dans lequel une première rainure principale circonférentielle (5) est formée sur le centre de la portion centrale de la bande de roulement (4) dans la direction de la largeur du pneumatique WD, dans lequel une deuxième rainure principale circonférentielle (5) est prévue dans la première région de portion de connexion annulaire (40) et une troisième rainure principale circonférentielle (5) est prévue dans la seconde région de portion de connexion annulaire (40), dans lequel uniquement la deuxième rainure principale (5) et la troisième rainure principale (5) situées dans les régions de portions de connexion (40) incluent des projections qui se projettent individuellement vers l'intérieur de la rainure depuis les deux parois latérales de rainure (5a).
  2. Bandage non pneumatique (T) selon la revendication 1,
    dans lequel chacune des projections (50) de la deuxième rainure principale (5) et de la troisième rainure principale (5) se projette vers une ouverture de la rainure principale respective (5).
  3. Bandage non pneumatique (T) selon la revendication 1 ou 2,
    dans lequel la deuxième rainure principale (5) inclut une pluralité des projections (50) disposées le long d'une direction de profondeur de rainure de chacune de ses parois latérales (5a) et dans lequel la troisième rainure principale (5) inclut une pluralité des projections (50) disposées le long d'une direction de profondeur de rainure de chacune de ses parois latérales (5a).
  4. Bandage non pneumatique (T) selon l'une des revendications 1 à 3,
    dans lequel la projection (50) prévue sur les deux parois latérales de rainure (5a) de la deuxième rainure principale (5) et projection (50) prévue sur les deux parois latérales de rainure (5a) de la troisième rainure principale (5) sont prévues en continu le long d'une direction d'extension de la rainure principale respective (5).
  5. Bandage non pneumatique (T) selon l'une des revendications 1 à 4,
    dans lequel une section transversale de la projection (50) a une forme triangulaire, et
    dans lequel la projection (50) inclut une surface extérieure de projection (50a) tournée vers l'extérieur dans une direction radiale du pneumatique (RD) et une surface intérieure de projection (50b) tournée vers l'intérieur dans la direction radiale du pneumatique (RD), et la surface intérieure de projection (50b) est inclinée par rapport à la direction radiale du pneumatique (RD) de manière à se rapprocher de la paroi latérale de rainure (5a) vers un fond de rainure (5b) de la rainure (5).
  6. Bandage non pneumatique (T) selon la revendication 5,
    dans lequel la surface extérieure de projection (50a) est sensiblement parallèle à une direction de la largeur du pneumatique (WD).
  7. Bandage non pneumatique (T) selon la revendication 5,
    dans lequel la surface extérieure de projection (50a) est inclinée par rapport à la direction radiale du pneumatique (RD) de manière à se rapprocher de la paroi latérale de rainure (5a) vers le fond de rainure (5b) de la rainure (5).
  8. Bandage non pneumatique (T) selon la revendication 4,
    dans lequel les projections (50) se projetant depuis les deux parois latérales de rainure (5a) sont prévues à des positions différentes dans une direction de profondeur de rainure de la rainure (5).
EP20213090.2A 2019-12-13 2020-12-10 Pneu non pneumatique Active EP3835085B1 (fr)

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CN112976940A (zh) 2021-06-18
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US20210178827A1 (en) 2021-06-17
EP3835085A1 (fr) 2021-06-16

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